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首页> 外文期刊>Analytical and bioanalytical chemistry >Phenotyping the genus Hypericum by secondary metabolite profiling: emodin vs. skyrin, two possible key intermediates in hypericin biosynthesis
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Phenotyping the genus Hypericum by secondary metabolite profiling: emodin vs. skyrin, two possible key intermediates in hypericin biosynthesis

机译:通过次级代谢物分析表型化金刚素:大蛋白与kisylin,二霉素生物合成中的两个可能的钥匙中间体

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摘要

A wide range of compounds that occur in the genus Hypericum are listed as effective drugs of natural origin. The main biological activities of several Hypericum representatives are due to the presence of naphthodianthrones, phloroglucinols, and other diverse groups of secondary metabolites that synergistically contribute to their therapeutic effects. The regulation of biosynthesis of hypericin as the key bioactive naphthodianthrone remains uncertain. Here, we present liquid chromatography mass spectrometry-based phenotyping of 17 Hypericum species, the results of which suggest an important role for skyrin and its derivatives in the polyketide pathway that leads to hypericin formation. Moreover, we report for the first time the presence of new metabolites in the genus Hypericum that are related to classes of anthraquinones, their derivatives, and phloroglucinols. As skyrin and other species of anthraquinones are rarely found in higher plants but frequently occur in fungal microorganisms, the obtained results suggest that further research on the synthesis pathways of hypericin and the role of anthraquinone derivatives in plant metabolism should be carried out. The fact that these compounds are commonly synthesized in endophytic fungi and perhaps there is some similarity in the metabolic pathways between these organisms should also be investigated.
机译:在HutcherIn属中发生的各种化合物被列为天然原产地的有效药物。几种金丝询代表的主要生物学活性是由于萘代蒽酮,甘油蛋白和其他不同组的次级代谢物,其协同促进其治疗效果。作为关键生物活性萘硫替尼霉素的生物合成的调节仍然不确定。这里,我们提出了基于液相色谱质谱法的17Uchericum物种的表型,其结果表明在导致高霉素形成的聚酮途径中的柿子及其衍生物的重要作用。此外,我们首次报告了与蒽醌类,衍生物和甘油蛋白醇的类属的新代谢物的存在。随着睾丸和其他物种在高等植物中很少发现,但经常发生在真菌微生物中,所得结果表明,应进一步研究丙晶菌素的合成途径和蒽醌衍生物在植物代谢中的作用。这些化合物通常在内生真菌中合成的事实​​,也许在这些生物之间的代谢途径中也可能存在一些相似之处。

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